Intelligent pueraria transportation equipment
Patent Information
- Application Number
- CN202610400893.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2026-03-30
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2046-03-30
AI Technical Summary
[0003]葛根作为一种优质农产品,在药用和食用副产品方面有较高的价值,在加工过程中通常需要采用运输输送设备将生产加工环节打通,又加上葛根在生产加工过程中因成品不同生产的流程较多,如清洗、切片、干燥、切块等,因开放输送而产生氧化变质以及输送扬尘等问题,需要针对不同环节采用不同的输送设备,增加了设备成本,现有输送设备难以针对多个环节进行缩减设备使用,无法在清洗和干燥等不同流程使用,从而产生了一定的不便,基于此提出一种葛根智能运输设备
[0017]与现有技术相比,本发明的有益效果是:1、该设备对葛根料进行处理,输送时伺服减速电机启动,通过驱动齿轮带动从动齿环进而促使镂空筒缓慢转动,镂空筒通过支撑轴承进行转动支撑,而葛根料通过进料端口和波纹管一导入,在镂空筒和螺旋板一的作用下逐步输送,并通过柔性管段和波纹管段的柔性可以根据需要调节输送的小角度,并通过柔性管段带动另一端的镂空筒和螺旋板一的转动,促使葛根料输送到波纹管二和出料端口导入下一流程,并且波纹管一和进料端口与波纹管二和出料端口的输出形状按需根据葛根料的形状需求进行适配更换,方便根据需求进行输送,增加了便利性;
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Figure CN121948039B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of kudzu agricultural product transportation technology, specifically to an intelligent kudzu transportation device. Background Technology
[0002] Kudzu root is the tuberous root of a vine belonging to the genus Pueraria in the legume family. It is a traditional Chinese agricultural product that is both food and medicine. It is highly adaptable to planting and widely distributed. It can be eaten fresh, processed into kudzu root powder, beverages, pastries and other food products, and can also be used as a Chinese medicinal material to extract effective components. It is a high-quality agricultural product with edible, medicinal and economic value.
[0003] Kudzu root, as a high-quality agricultural product, has significant value in both medicinal and edible by-product applications. Its processing typically requires transportation equipment to streamline the production and processing stages. Furthermore, the production process of kudzu root involves numerous steps, such as washing, slicing, drying, and chopping, depending on the final product. Open transportation can lead to oxidation, spoilage, and dust generation, necessitating the use of different conveying equipment for each stage, thus increasing equipment costs. Existing conveying equipment is difficult to adapt to multiple stages and cannot be used in different processes such as washing and drying, causing considerable inconvenience. Therefore, this paper proposes an intelligent kudzu root transportation device. Summary of the Invention
[0004] The purpose of this invention is to provide a kudzu intelligent transportation device to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a kudzu intelligent transportation device, comprising a pipe body one and a pipe body two, with corrugated pipe sections connecting the opposite ends of the pipe body one and the pipe body two. U-shaped supports are hinged to the outer sides of both ends of the pipe body one and the pipe body two via support rings. Several sets of support columns are fixedly installed on the inner walls of both the pipe body one and the pipe body two. Support bearings are fixedly installed on the opposite sides of the support columns. A hollow cylinder is sleeved on the inner side of the support bearing. A flexible pipe section connects to the opposite end of the hollow cylinder. A spiral plate is fixedly sleeved on the inner side of the hollow cylinder. A flexible spiral plate is fixedly installed on the inner side of the flexible pipe section. Rotary sealing mechanisms are provided on the outer sides of both ends of the pipe body one and pipe body two. A U-shaped pipe is connected across the top and bottom of the rotary sealing mechanism. A connecting pipe one is connected in the middle of the U-shaped pipe. A connecting pipe two is connected on one side of the connecting pipe one. A driven gear ring is fixedly sleeved on the outer side of one end of the hollow cylinder. A drive gear is meshed on the outer side of the driven gear ring. A servo reduction motor is connected to one side of the drive gear. The servo reduction motor is fixedly installed on the outer side of the pipe body one.
[0006] The rotary sealing mechanism includes a hollow pipe section, a concave frame, and a support ring plate. There are two support ring plates, which are symmetrically and fixedly distributed on both sides of the hollow pipe section. A sealing bearing three is sleeved on the outer side of each of the two support ring plates. A sealing limiting cone three is provided on the opposite side of the sealing bearing three. A rotary sealing element four is provided on the opposite side of the support ring plate and the concave frame.
[0007] The flexible pipe section includes a polyurethane modified elastomer layer and a food-grade silicone layer. The food-grade silicone layer is located inside the polyurethane modified elastomer layer. Several circumferential annular reinforcing ribs are sleeved on the outside of the polyurethane modified elastomer layer. Several axial torque transmission ribs are fixedly installed inside the polyurethane modified elastomer layer.
[0008] Preferably, the U-shaped bracket has hoisting holes at both ends, and an adjustable bracket is hinged to the bottom of the outer side of the U-shaped bracket.
[0009] Preferably, the support columns are evenly distributed in a circular linear pattern inside the first and second tubes, and the supporting bearings are evenly distributed in a linear pattern on the inner sides of the first and second tubes.
[0010] Preferably, the axial torque transmission ribs are evenly distributed circumferentially inside the polyurethane modified elastomer layer, and the circumferential annular reinforcing ribs are evenly distributed linearly on the outside of the polyurethane modified elastomer layer. The two ends of the polyurethane modified elastomer layer and the food-grade silicone layer are fixedly installed at opposite ends of the hollow cylinder.
[0011] Preferably, the two ends of the flexible spiral plate are fixedly connected to the opposite ends of the first spiral plate, the specifications and dimensions of the first spiral plate are adapted to the specifications and dimensions of the flexible spiral plate, the flexible spiral plate is made of composite flexible elastomer material, and the position of the flexible pipe section corresponds to the position of the corrugated pipe section.
[0012] Preferably, the U-shaped tube, connecting tube one, and connecting tube two are symmetrically and evenly distributed at the top and bottom of the rotary sealing mechanism, and each of the connecting tube one and connecting tube two is equipped with an electrically controlled valve.
[0013] Preferably, the sealing limiting cone three is located outside the sealing bearing three, the sealing limiting cone three is fixedly sleeved on the inner side of the concave frame, the specifications and dimensions of the hollow tube section are adapted to the specifications and dimensions of the support ring plate, the hollow tube section is opened on the tube wall of tube body one and tube body two, the support ring plate is fixedly sleeved on the outer side wall of tube body one and tube body two, the U-shaped tube is connected to the inner side of the concave frame, and the concave frame is movably sleeved on the outer side of the support ring plate, the rotary seal four and the sealing bearing three.
[0014] Preferably, a sealing ring is fixedly installed at the end of both the first and second pipe bodies away from the corrugated pipe section, and a rotating seal is provided on the inner side of the sealing ring, which is sleeved on the outer side of the hollow cylinder.
[0015] Preferably, a sealing bearing is fitted inside the hollow cylinder at the end furthest from the tube body 2. A flow-guiding sealing cone is provided on one side of the sealing bearing, and a rotary seal is provided on the other side. A bellows is fitted inside the sealing bearing, and the other end of the bellows is connected to a feed port. The flow-guiding sealing cone is fixedly fitted onto the inner wall of the tube body 1. The rotary seal is movably fitted onto the opposite side of the bellows and the tube body 1. A sealing bearing is fitted outside the hollow cylinder at the end furthest from the tube body 1. The sealing shaft... A second bellows is sleeved on the outer side of the second sealing bearing. A third rotary seal is provided on one side of the second sealing bearing, and a second flow guide sealing cone is provided on the other side of the third rotary seal. One side of the second flow guide sealing cone is fixedly installed on one side of the hollow cylinder. The third rotary seal is movably sleeved on the opposite side of the second sealing bearing and the second flow guide sealing cone. The end of the second bellows away from the hollow cylinder is connected to a discharge port. Several mounting parts are fixedly installed on the outer side of both the discharge port and the inlet port. Both the second bellows and the first bellows are movably arranged at one end of the hollow cylinder.
[0016] Preferably, both the first and second pipe bodies are equipped with temperature and humidity sensors inside, and the second pipe body is equipped with an intelligent control console on the outside of the second pipe body. The intelligent control console is installed on the outside of the second pipe body by bolts.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. When the equipment processes kudzu root material, the servo reduction motor is started during conveying, and the driven gear drives the driven gear ring, which in turn causes the hollow cylinder to rotate slowly. The hollow cylinder is supported by the support bearing, and the kudzu root material is introduced through the feed port and the first corrugated pipe. Under the action of the hollow cylinder and the first spiral plate, it is gradually conveyed. The flexibility of the flexible pipe section and the corrugated pipe section can adjust the small angle of conveying as needed. The flexible pipe section drives the rotation of the hollow cylinder and the first spiral plate at the other end, which causes the kudzu root material to be conveyed to the second corrugated pipe and the discharge port to enter the next process. Furthermore, the output shape of the first corrugated pipe and the feed port and the second corrugated pipe and the discharge port can be adapted and changed according to the shape requirements of the kudzu root material, which facilitates conveying according to the requirements and increases convenience. 2. By setting up a rotary sealing mechanism, when fluid is introduced into the U-shaped tube at one end, it is limited by the concave frame and the sealing limiting cone three, and then enters the interior of the pipe body one and pipe body two through the hollow pipe section, which facilitates the fluid to pass through the operation. The support ring plate and the concave frame can change position under the rotational support of the rotary seal four and the sealing bearing three. For example, the rotary sealing mechanism can be placed horizontally, so that the airflow enters at one end and exits at the other end, so that the dust generated during the transportation of kudzu root can be filtered out. When arranged vertically, water can be sprayed on the outside of the hollow cylinder through the concave frame and the hollow pipe section. The position can be adjusted according to the needs. 3. By setting flexible pipe sections and corrugated pipe sections, the positions of the flexible pipe sections and corrugated pipe sections correspond, which can ensure a certain angle adjustment under the action of flexibility, and can also play the role of pipeline transportation. It is convenient to match the adjustable support so that the height and tilt angle of pipe body one and pipe body two can be adjusted within a small range, which facilitates the adaptation of multiple processes in kudzu material processing. Attached Figure Description
[0018] Figure 1 This is a front-view stereoscopic structural diagram of the present invention.
[0019] Figure 2 This is a rear-view stereoscopic view of the structure of the present invention.
[0020] Figure 3 This is a front sectional view of the internal structure of the present invention.
[0021] Figure 4 This is a schematic diagram of the right-side cross-sectional structure of the present invention.
[0022] Figure 5 For the present invention Figure 3 Enlarged structural diagram at point A in the middle.
[0023] Figure 6 For the present invention Figure 3 Enlarged structural diagram at point B.
[0024] Figure 7 For the present invention Figure 3 Enlarged structural diagram at point C.
[0025] Figure 8 For the present invention Figure 3 Enlarged structural diagram at point D.
[0026] In the diagram: 1. Pipe body one; 101. Hollowed-out pipe section; 2. U-shaped bracket; 3. Lifting hole; 4. Adjustable bracket; 5. Corrugated pipe section; 6. Pipe body two; 7. Rotary sealing mechanism; 701. Concave frame; 702. Support ring plate; 703. Rotary seal four; 704. Sealing bearing three; 705. Sealing limit cone three; 8. U-shaped pipe; 9. Connecting pipe one; 10. Connecting pipe two; 11. Electrically controlled valve; 12. Intelligent control console; 13. Corrugated pipe two; 14. Discharge port; 15. Corrugated pipe one; 16. Inlet port; 17. Mounting component; 18. Servo geared motor; 19. 20. Drive gear; 21. Driven gear ring; 22. Sealing ring; 23. Temperature and humidity sensor; 24. Hollowed-out cylinder; 25. Spiral plate one; 26. Flexible spiral plate; 27. Flexible pipe section; 28. Polyurethane modified elastomer layer; 29. Food-grade silicone layer; 20. Axial torque transmission rib; 21. Circumferential ring reinforcement rib; 22. Support bearing; 23. Support column; 24. Rotary seal one; 35. Sealing bearing one; 36. Rotary seal two; 37. Flow guiding sealing cone one; 38. Sealing bearing two; 39. Flow guiding sealing cone two; 30. Rotary seal three. Detailed Implementation
[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0028] Please see Figures 1-8 This invention provides a technical solution: a kudzu intelligent transportation device, comprising a pipe body 1 and a pipe body 2 6, with corrugated pipe sections 5 connecting the opposite ends of the pipe body 1 and the pipe body 2 6. U-shaped supports 2 are hinged to the outer sides of both ends of the pipe body 1 and the pipe body 2 6 via support rings. Several sets of support columns 28 are fixedly installed on the inner walls of the pipe body 1 and the pipe body 2 6. Support bearings 27 are fixedly installed on the opposite sides of the support columns 28. A hollow cylinder 23 is sleeved on the inner side of the support bearing 27. A flexible pipe section 26 connects to the opposite end of the hollow cylinder 23. A spiral plate 24 is fixedly sleeved on the inner side of the hollow cylinder 23. A flexible spiral plate 25 is fixedly installed on the inner side of the tube section 26. Rotary sealing mechanisms 7 are provided on the outer sides of both ends of the tube body 1 and the tube body 2. A U-shaped tube 8 is connected across the top and bottom of the rotary sealing mechanism 7. A connecting tube 1 9 is connected in the middle of the U-shaped tube 8. A connecting tube 2 10 is connected on one side of the connecting tube 1 9. A driven gear ring 20 is fixedly sleeved on the outer side of one end of the hollow cylinder 23. A drive gear 19 is meshed on the outer side of the driven gear ring 20. A servo gear motor 18 is connected to one side of the drive gear 19. The servo gear motor 18 is fixedly installed on the outer side of the tube body 1.
[0029] The rotary sealing mechanism 7 includes a hollow tube section 101, a concave frame 701, and a support ring plate 702. There are two support ring plates 702, and the two support ring plates 702 are symmetrically and fixedly distributed on both sides of the hollow tube section 101. A sealing bearing 704 is sleeved on the outer side of each of the two support ring plates 702. A sealing limiting cone 705 is provided on the opposite side of the sealing bearing 704. A rotary sealing element 703 is provided on the opposite side of the support ring plate 702 and the concave frame 701.
[0030] The flexible pipe section 26 includes a polyurethane modified elastomer layer 2601 and a food-grade silicone layer 2602. The food-grade silicone layer 2602 is located inside the polyurethane modified elastomer layer 2601. Several circumferential annular reinforcing ribs 2604 are sleeved on the outside of the polyurethane modified elastomer layer 2601. Several axial torque transmission ribs 2603 are fixedly installed inside the polyurethane modified elastomer layer 2601.
[0031] The working principle of the above technical solution is as follows: During use, the heights of pipe body 1 and pipe body 6 are adjusted according to actual needs via the adjustable bracket 4, ensuring that pipe body 1, corrugated pipe section 5, and pipe body 6 maintain a height difference during conveying, which facilitates gravity-based conveying. The inlet port 16 and outlet port 14 are connected to input and output devices respectively. Connecting pipe 9 and connecting pipe 10 are connected to auxiliary equipment as needed, such as a warm air blower, air pump, condenser, or air filter for airflow processing, or a water pump, water filter, or heater for water flow processing. Airflow or water flow is directed through pipe body 1 and pipe body 6 as required, thereby processing the conveyed kudzu root material. During conveying, the servo reduction motor 18 starts, driving the gear 19... The driven toothed ring 20 causes the hollow cylinder 23 to rotate slowly. The hollow cylinder 23 is supported by the support bearing 27. The kudzu root material is introduced through the feed port 16 and the first corrugated pipe 15. Under the action of the hollow cylinder 23 and the first spiral plate 24, it is gradually conveyed. The flexibility of the flexible pipe section 26 and the corrugated pipe section 5 can adjust the small angle of conveying as needed. The flexible pipe section 26 drives the rotation of the hollow cylinder 23 and the first spiral plate 24 at the other end, causing the kudzu root material to be conveyed to the second corrugated pipe 13 and the discharge port 14 to enter the next process. The output shape of the first corrugated pipe 15 and the feed port 16 and the second corrugated pipe 13 and the discharge port 14 can be adapted and changed according to the shape requirements of the kudzu root material, which facilitates the conveying according to the needs and increases convenience.
[0032] In another implementation scheme, such as Figures 1-4 As shown, the U-shaped bracket 2 has hoisting holes 3 inside at both ends, and an adjustable bracket 4 is hinged to the bottom of the outer side of the U-shaped bracket 2.
[0033] The function of the hoisting hole 3 is to allow the adjustable bracket 4 to be removed from the U-shaped bracket 2 when the workshop needs to be lowered, and to hoist the tube body 1 and the tube body 2 6 through the hoisting hole 3 into the equipment usage area of the workshop. This allows them to be used in the overhead area and is convenient to use according to needs. The adjustable bracket 4 is one end supported and the other end adjustable, so that the tilt angle of one end of the tube body 1 and the tube body 2 6 can be adjusted. This allows the tube body 1 and the tube body 2 6 to be arranged at different angles with one end tilted and the other end level, which is convenient to adjust according to the needs of the kudzu equipment.
[0034] In another implementation scheme, such as Figures 1-6 As shown, the support column 28 is evenly distributed in a circular linear pattern inside the tube body 1 and the tube body 2, and the support bearing 27 is evenly distributed in a linear pattern on the inner side of the tube body 1 and the tube body 2.
[0035] The columnar shape and circumferential distribution of the support column 28 facilitates uniform support for the support bearing 27 and does not obstruct the flow of air and water. This allows the support column 28 and the support bearing 27 to provide rotational support for the hollow cylinder 23, increasing ease of use.
[0036] In another implementation scheme, such as Figures 1-7 As shown, the axial torque transmission ribs 2603 are evenly distributed in a circular pattern inside the polyurethane modified elastomer layer 2601, and the circumferential annular reinforcing ribs 2604 are evenly distributed in a linear pattern on the outside of the polyurethane modified elastomer layer 2601. The two ends of the polyurethane modified elastomer layer 2601 and the food-grade silicone layer 2602 are fixedly installed at the opposite ends of the hollow cylinder 23.
[0037] The food-grade silicone layer 2602 is the inner contact material, made of food-grade EPDM rubber or food-grade silicone. It is water-resistant, starch-resistant, and resistant to cellulose fiber abrasion. It is non-stick, easy to clean, and meets food hygiene requirements. The polyurethane modified elastomer layer 2601 is the outer reinforcing matrix. Typically, polyurethane modified elastomer is tear-resistant, torsion-resistant, and can withstand rotational torque without slipping. The flexible connector is made of food-grade EPDM rubber and polyurethane elastomer composite molding. The inner layer is smooth and hygienic and resistant to slurry corrosion, while the outer layer has high toughness and torsion resistance. It can transmit circumferential torque while achieving flexible compensation of the pipeline. Furthermore, the circumferential annular reinforcing ribs 2604, made of polyester cord / 304 stainless steel fine ring ribs, are evenly distributed circumferentially and embedded in the flexible body. Their function is to prevent the flexible segment from bulging, losing roundness, and radial misalignment. Combined with the axial torque transmission ribs 2603, made of stainless steel spiral wire / axially woven carbon fiber ribs, they are evenly distributed spirally or in a straight line along the axial direction of the flexible connector. Their function is to directly drive the other end to rotate synchronously when one end rotates, avoiding relative slippage and angular misalignment. The flexible connector has an embedded composite reinforcing rib structure, including circumferential annular anti-bulging ribs, axial torque reinforcing ribs, and a warp and weft mesh reinforcement layer. The annular ribs limit radial movement and misalignment, the axial ribs enable synchronous transmission of circumferential torque, and the mesh layer ensures flexible compensation without twisting or deviation. It can provide flexible rotational force transmission while changing angles, ensuring system operation.
[0038] In another implementation scheme, such as Figures 1-7 As shown, the two ends of the flexible spiral plate 25 are fixedly connected to the opposite ends of the spiral plate 24. The specifications and dimensions of the spiral plate 24 are adapted to the specifications and dimensions of the flexible spiral plate 25. The flexible spiral plate 25 is made of composite flexible elastomer material. The position of the flexible pipe section 26 corresponds to the position of the corrugated pipe section 5.
[0039] The flexible material of the flexible spiral plate 25 can be selected with reference to the material of the flexible pipe section 26, ensuring that it maintains a certain strength under the action of flexibility. It can also bear a certain resistance to torsion when changing the bending angle with the flexible pipe section 26, ensuring that it will not lose its function at a specific angle when used with the spiral plate 24, thus ensuring the operation of the structure. When working with the spiral plate 24 and the flexible pipe section 26, the positions of the flexible pipe section 26 and the corrugated pipe section 5 correspond, which can ensure a certain angle adjustment under the action of flexibility, and can also play the role of pipeline transportation, indirectly increasing the use effect.
[0040] In another implementation scheme, such as Figures 1-7 As shown, the U-shaped tube 8, connecting tube 1 9 and connecting tube 2 10 are symmetrically and evenly distributed on the top and bottom of the rotary sealing mechanism 7. The connecting tube 1 9 and connecting tube 2 10 are each equipped with an electrically controlled valve 11.
[0041] The U-shaped pipe 8 spans two rotary sealing mechanisms 7, ensuring stable positioning during use and synchronizing the positions of the two rotary sealing mechanisms 7, thus ensuring stable fluid transport for a certain period. The function of connecting pipe 1 9 and connecting pipe 2 10 is to connect relevant auxiliary equipment, such as air heaters, air pumps, condensers, and air filters for airflow treatment, or water pumps, water filters, and heaters for water flow treatment, ensuring that the fluid can be used, assisting other processes in the transport process, and improving the shortcomings generated during the transport process. The electrically controlled valve 11 is an electrically controlled structure that is synchronously controlled by an intelligent system. In conjunction with intelligent auxiliary equipment, it can control the operation of different equipment according to different transport programs, indirectly achieving the effect of structural matching and auxiliary use.
[0042] In another implementation scheme, such as Figures 1-6 As shown, the sealing limiting cone 3 705 is located outside the sealing bearing 3 704. The sealing limiting cone 3 705 is fixedly sleeved on the inner side of the concave frame 701. The specifications and dimensions of the hollow tube section 101 are adapted to the specifications and dimensions of the support ring plate 702. The hollow tube section 101 is opened on the tube wall of tube body 1 and tube body 2 6. The support ring plate 702 is fixedly sleeved on the outer side wall of tube body 1 and tube body 2 6. The U-shaped tube 8 is connected to the inner side of the concave frame 701. The concave frame 701 is movably sleeved on the outer side of the support ring plate 702, the rotary seal 4 703 and the sealing bearing 3 704.
[0043] The concave frame 701 limits the fluid introduced through the U-shaped tube 8 and helps maintain the relative position of the U-shaped tube 8. It also limits the fluid position of the support ring plate 702 and the sealing limiting cone 3 705. When fluid is introduced through one end of the U-shaped tube 8, it is limited by the concave frame 701 and the sealing limiting cone 3 705, passes through the hollow pipe section 101 and enters the interior of the pipe body 1 and the pipe body 2 6, and is discharged through the other end of the U-shaped tube 8. It flows through the inner side of the concave frame 701 and the hollow pipe section 101, facilitating flow. The body passes through the work, and the support ring plate 702 and the concave frame 701 can change position under the rotational support of the rotary seal 703 and the sealing bearing 704. For example, it can cause the rotary seal mechanism 7 and the U-shaped tube 8 to be placed horizontally relative to the tube body 1 and the tube body 26, so that the airflow enters at one end and exits at the other end, so that the dust generated during the transportation of kudzu root can be filtered out. When arranged vertically, water can be sprayed on the outside of the hollow cylinder 23 through the concave frame 701 and the hollow pipe section 101. The position can be adjusted according to the needs. In another embodiment, when the U-shaped bracket 2 and the pipe body 1 are connected by bearings within the annular support of the support ring, the pipe body 1 needs to rotate back and forth to reduce the blockage of the internal flow. The rotational support of the sealing bearing 3 704 and the rotary seal 4 703 on the support ring plate 702 and the concave frame 701 allows the rotary sealing mechanism 7 to maintain a relatively stable position. The size of the perforated hole of the perforated pipe section 101 can be adjusted according to actual production needs. For example, the hole diameter of the perforated pipe section 101 for airflow dust treatment can be appropriately reduced, while the perforated pipe section 101 can be enlarged during production if a lot of fibers fall off during some cleaning processes. This facilitates auxiliary use, increases the structural performance, and makes it easier to adjust the product specifications according to actual needs.
[0044] In another implementation scheme, such as Figures 1-8 As shown, sealing rings 21 are fixedly installed at the ends of pipe body 1 and pipe body 2 away from the corrugated pipe section 5. A rotating seal 29 is provided on the inner side of the sealing ring 21, and the rotating seal 29 is sleeved on the outer side of the hollow cylinder 23.
[0045] The function of the sealing ring 21 is to raise the height of the retaining ring inside the pipe body 1. When the inside of the pipe body 1 is responsible for water storage, it blocks the inside and, together with the rotary seal 29, ensures that water and air flow will not overflow over a large area during rotation, thereby ensuring the working area and guaranteeing the working effect. The hollowed-out area of the hollowed-out cylinder 23 is distributed on the opposite side of the sealing ring 21, so that the air and water flow are limited within the range of the pipe body 1 and the sealing ring 21, so as to carry out the operation in a coordinated manner.
[0046] In another implementation scheme, such as Figures 1-8As shown, a sealing bearing 30 is fitted inside the hollow cylinder 23 at the end away from the tube body 1. A flow-guiding sealing cone 32 is provided on one side of the sealing bearing 30, and a rotary seal 31 is provided on the other side. A bellows 15 is fitted inside the sealing bearing 30, and the other end of the bellows 15 is connected to a feed port 16. The flow-guiding sealing cone 32 is fixedly fitted onto the inner wall of the tube body 1. The rotary seal 31 is movably fitted onto the opposite side of the bellows 15 and the tube body 1. A sealing bearing 33 is fitted outside the hollow cylinder 23 at the end away from the tube body 1. A bellows tube 213 is sleeved on the outside. A rotary seal 35 is provided on one side of the sealing bearing 23. A flow guide sealing cone 24 is provided on the other side of the rotary seal 35. One side of the flow guide sealing cone 24 is fixedly installed on one side of the hollow cylinder 23. The rotary seal 35 is movably sleeved on the opposite side of the sealing bearing 23 and the flow guide sealing cone 24. The end of the bellows tube 213 away from the hollow cylinder 23 is connected to the discharge port 14. Several mounting parts 17 are fixedly installed on the outside of the discharge port 14 and the inlet port 16. The bellows tube 213 and the bellows tube 15 are movably arranged at one end of the hollow cylinder 23.
[0047] By setting the rotational support bearings of sealed bearing 1 30 and sealed bearing 2 33, and cooperating with the rotational flow guide of rotating seal 2 31 and flow guide sealing cone 1 32 and flow guide sealing cone 2 34 and rotating seal 3 35, the bellows 2 13 and bellows 15 can maintain their positions inside the hollow cylinder 23 in a constant position. When the material is fixed to the input and output connection ends of the equipment through the discharge port 14 and the feed port 16 via the mounting part 17, the mechanism can maintain relative stability, facilitate auxiliary operation, increase the overall use effect, and facilitate stable operation. The kudzu material is introduced into the hollow cylinder 23 from one end of the bellows 1 15 and discharged from the inside of the hollow cylinder 23 through one end of the bellows 2 13, which is convenient for import and export and meets the rotation requirements.
[0048] In another implementation scheme, such as Figures 1-4 As shown, temperature and humidity sensors 22 are installed inside both pipe body 1 and pipe body 2 6, and an intelligent control console 12 is installed on the outside of pipe body 2 6 by bolts.
[0049] The temperature and humidity sensor 22 is used to assist the equipment in intelligent operation by monitoring the temperature and humidity inside the device. This assists the intelligent control console 12 in intelligent control connection, adjusting the speed of the servo geared motor 18 and external intelligent auxiliary equipment, such as airflow treatment heaters, air pumps, condensers, airflow filters, or water flow treatment pumps, water flow filters, heaters, etc., including but not limited to the lifting mechanism of the hoisting structure and the intelligent controllable adjustable bracket 4. This is to adapt the equipment to different kudzu processing areas and processes in the workshop, thereby increasing the adaptability of the equipment. The intelligent control console 12 is an intelligent device with built-in intelligent control system and extended intelligent control system, as well as intelligent control hardware, which is used after being programmed, adapted and debugged by engineers in the field.
[0050] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A kudzu intelligent transportation device, comprising a first pipe body (1) and a second pipe body (6), characterized in that: Corrugated pipe sections (5) are connected to the opposite ends of the first pipe body (1) and the second pipe body (6). U-shaped brackets (2) are hinged to the outer sides of both ends of the first pipe body (1) and the second pipe body (6) through support rings. Several sets of support columns (28) are fixedly installed on the inner walls of the first pipe body (1) and the second pipe body (6). Support bearings (27) are fixedly installed on the opposite sides of the support columns (28). Hollow cylinders (23) are sleeved on the inner side of the support bearings (27). Flexible pipe sections (26) are connected to the opposite ends of the hollow cylinders (23). Spiral plates (24) are fixedly sleeved on the inner side of the hollow cylinders (23). Flexible spiral plates are fixedly installed on the inner side of the flexible pipe sections (26). (25) Rotary sealing mechanisms (7) are provided on the outer sides of both ends of the first tube (1) and the second tube (6). A U-shaped tube (8) is connected across the top and bottom of the rotary sealing mechanism (7). A connecting tube (9) is connected in the middle of the U-shaped tube (8). A connecting tube (10) is connected on one side of the connecting tube (9). A driven gear ring (20) is fixedly sleeved on the outer side of one end of the hollow cylinder (23). A drive gear (19) is meshed on the outer side of the driven gear ring (20). A servo gear motor (18) is connected to one side of the drive gear (19). The servo gear motor (18) is fixedly installed on the outer side of the first tube (1). The rotary sealing mechanism (7) includes a hollow tube section (101), a concave frame (701), and a support ring plate (702). There are two support ring plates (702), and the two support ring plates (702) are symmetrically and fixedly distributed on both sides of the hollow tube section (101). A sealing bearing three (704) is sleeved on the outer side of each of the two support ring plates (702). A sealing limiting cone three (705) is provided on the opposite side of the sealing bearing three (704). A rotary sealing element four (703) is provided on the opposite side of the support ring plate (702) and the concave frame (701). The flexible pipe segment (26) includes a polyurethane modified elastomer layer (2601) and a food-grade silicone layer (2602). The food-grade silicone layer (2602) is located inside the polyurethane modified elastomer layer (2601). Several circumferential annular reinforcing ribs (2604) are sleeved on the outside of the polyurethane modified elastomer layer (2601). Several axial torque transmission ribs (2603) are fixedly installed inside the polyurethane modified elastomer layer (2601).
2. The intelligent transportation equipment for kudzu root according to claim 1, characterized in that: The U-shaped bracket (2) has hoisting holes (3) inside both ends, and an adjustable bracket (4) is hinged to the bottom of the outer side of the U-shaped bracket (2).
3. The intelligent kudzu transportation device according to claim 1, characterized in that: The support column (28) is evenly distributed in a circular linear pattern inside the tube body one (1) and the tube body two (6), and the support bearing (27) is evenly distributed in a linear pattern on the inner side of the tube body one (1) and the tube body two (6).
4. The intelligent kudzu transportation device according to claim 1, characterized in that: The axial torque transmission ribs (2603) are evenly distributed in a circular pattern inside the polyurethane modified elastomer layer (2601), and the circumferential annular reinforcing ribs (2604) are evenly distributed in a linear pattern on the outside of the polyurethane modified elastomer layer (2601). The two ends of the polyurethane modified elastomer layer (2601) and the food-grade silicone layer (2602) are fixedly installed at opposite ends of the hollow cylinder (23).
5. The intelligent kudzu transportation device according to claim 1, characterized in that: The two ends of the flexible spiral plate (25) are fixedly connected to the opposite ends of the spiral plate (24). The specifications and dimensions of the spiral plate (24) are adapted to the specifications and dimensions of the flexible spiral plate (25). The flexible spiral plate (25) is made of composite flexible elastomer material. The position of the flexible pipe section (26) corresponds to the position of the corrugated pipe section (5).
6. The intelligent kudzu transportation device according to claim 1, characterized in that: The U-shaped tube (8), connecting tube one (9) and connecting tube two (10) are symmetrically and evenly distributed on the top and bottom of the rotary sealing mechanism (7). The connecting tube one (9) and connecting tube two (10) are each equipped with an electrically controlled valve (11).
7. The intelligent kudzu transportation device according to claim 1, characterized in that: The sealing limiting cone three (705) is located outside the sealing bearing three (704). The sealing limiting cone three (705) is fixedly sleeved on the inner side of the concave frame (701). The specifications and dimensions of the hollow pipe section (101) are adapted to the specifications and dimensions of the support ring plate (702). The hollow pipe section (101) is opened on the pipe wall of pipe body one (1) and pipe body two (6). The support ring plate (702) is fixedly sleeved on the outer side wall of pipe body one (1) and pipe body two (6). The U-shaped pipe (8) is connected to the inner side of the concave frame (701). The concave frame (701) is movably sleeved on the outer side of the support ring plate (702), the rotary seal four (703), and the sealing bearing three (704).
8. The intelligent transportation equipment for kudzu root according to claim 1, characterized in that: Both the first pipe body (1) and the second pipe body (6) are fixedly installed with a sealing ring (21) at the end away from the corrugated pipe section (5). A rotating seal (29) is provided on the inner side of the sealing ring (21), and the rotating seal (29) is sleeved on the outer side of the hollow cylinder (23).
9. The intelligent transportation equipment for kudzu root according to claim 1, characterized in that: A sealing bearing (30) is fitted inside the hollow cylinder (23) at the end away from the tube body (6). A flow-guiding sealing cone (32) is provided on one side of the sealing bearing (30), and a rotary seal (31) is provided on the other side of the sealing bearing (30). A bellows (15) is fitted inside the sealing bearing (30), and the other end of the bellows (15) is connected to a feed port (16). The flow-guiding sealing cone (32) is fixedly fitted onto the inner wall of the tube body (1). The rotary seal (31) is movably fitted onto the opposite side of the bellows (15) and the tube body (1). A sealing bearing (33) is fitted outside the hollow cylinder (23) at the end away from the tube body (1). A bellows second (13) is sleeved on the outside of the cavity (23). A rotary seal third (35) is provided on one side of the sealed bearing second (33). A flow guide seal cone second (34) is provided on the other side of the rotary seal third (35). One side of the flow guide seal cone second (34) is fixedly installed on one side of the hollow cylinder (23). The rotary seal third (35) is movably sleeved on the opposite side of the sealed bearing second (33) and the flow guide seal cone second (34). The end of the bellows second (13) away from the hollow cylinder (23) is connected to the discharge port (14). Several mounting parts (17) are fixedly installed on the outside of the discharge port (14) and the feed port (16). The bellows second (13) and the bellows first (15) are movably arranged at one end of the hollow cylinder (23).
10. The intelligent transportation equipment for kudzu root according to claim 1, characterized in that: Temperature and humidity sensors (22) are installed inside both the first tube (1) and the second tube (6). A smart control console (12) is installed on the outside of the second tube (6) by bolts.
Citation Information
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